Title :
Oscillation characteristics of endodontic files: numerical model and its validation
Author :
Verhaagen, B. ; Lea, S.C. ; De Bruin, G.J. ; Van Der Sluis, L.W.M. ; Walmsley, A.D. ; Versluis, M.
Author_Institution :
Inst. for Biomed. Technol. & Tech. Med. MIRA, Univ. of Twente, Enschede, Netherlands
fDate :
11/1/2012 12:00:00 AM
Abstract :
During a root canal treatment, an antimicrobial fluid is injected into the root canal to eradicate all bacteria from the root canal system. Agitation of the fluid using an ultrasonically vibrating miniature file results in a significant improvement in the cleaning efficacy over conventional syringe irrigation. Numerical analysis of the oscillation characteristics of the file, modeled as a tapered, driven rod, shows a sinusoidal wave pattern with an increase in amplitude and decrease in wavelength toward the free end of the file. Measurements of the file oscillation with a scanning laser vibrometer show good agreement with the numerical simulation. The numerical model of endodontic file oscillation has the potential for predicting the oscillation pattern and fracture likeliness of various file types and the acoustic streaming they induce during passive ultrasonic irrigation.
Keywords :
acoustic streaming; antibacterial activity; biomechanics; dentistry; fracture; laser applications in medicine; microorganisms; numerical analysis; oscillations; ultrasonic cleaning; ultrasonic therapy; acoustic streaming; antimicrobial fluid injection; bacteria; cleaning efficacy; conventional syringe irrigation; endodontic file oscillation; fracture likeliness; numerical analysis; numerical model; numerical simulation; numerical validation; oscillation characteristics; passive ultrasonic irrigation; root canal treatment; scanning laser vibrometer; sinusoidal wave pattern; ultrasonically vibrating miniature file; Damping; Fluids; Irrigation; Mathematical model; Numerical models; Oscillators; Steel; Computer Simulation; Dental Instruments; Models, Theoretical; Reproducibility of Results; Root Canal Therapy; Ultrasonics; Vibration;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2012.2477